Description

Book Synopsis
You receive an e-mail. It contains an offer for a complete personal computer system. It seems like the retailer read your mind since you were exploring computers on their web site just a few hours prior .

Table of Contents

Foreword xiii

Preface xvii

Acknowledgments xxv

Part One The Rise of Big Data 1

Chapter 1 What Is Big Data and Why Does It Matter? 3

What Is Big Data? 4

Is the “Big” Part or the “Data” Part More Important? 5

How Is Big Data Different? 7

How Is Big Data More of the Same? 9

Risks of Big Data 10

Why You Need to Tame Big Data 12

The Structure of Big Data 14

Exploring Big Data 16

Most Big Data Doesn’t Matter 17

Filtering Big Data Effectively 20

Mixing Big Data with Traditional Data 21

The Need for Standards 22

Today’s Big Data Is Not Tomorrow’s Big Data 24

Wrap-Up 26

Notes 27

Chapter 2 Web Data: The Original Big Data 29

Web Data Overview 30

What Web Data Reveals 36

Web Data in Action 42

Wrap-Up 50

Note 51

Chapter 3 A Cross-Section of Big Data Sources and the Value They Hold 53

Auto Insurance: The Value of Telematics Data 54

Multiple Industries: The Value of Text Data 57

Multiple Industries: The Value of Time and Location Data 60

Retail and Manufacturing: The Value of Radio Frequency Identification Data 64

Utilities: The Value of Smart-Grid Data 68

Gaming: The Value of Casino Chip Tracking Data 71

Industrial Engines and Equipment: The Value of Sensor Data 73

Video Games: The Value of Telemetry Data 76

Telecommunications and Other Industries: The Value of Social Network Data 78

Wrap-Up 82

Part Two Taming Big Data: The Technologies, Processes, and Methods 85

Chapter 4 The Evolution of Analytic Scalability 87

A History of Scalability 88

The Convergence of the Analytic and Data Environments 90

Massively Parallel Processing Systems 93

Cloud Computing 102

Grid Computing 109

MapReduce 110

It Isn’t an Either/Or Choice! 117

Wrap-Up 118

Notes 119

Chapter 5 The Evolution of Analytic Processes 121

The Analytic Sandbox 122

What Is an Analytic Data Set? 133

Enterprise Analytic Data Sets 137

Embedded Scoring 145

Wrap-Up 151

Chapter 6 The Evolution of Analytic Tools and Methods 153

The Evolution of Analytic Methods 154

The Evolution of Analytic Tools 163

Wrap-Up 175

Notes 176

Part Three Taming Big Data: The People and Approaches 177

Chapter 7 What Makes a Great Analysis? 179

Analysis versus Reporting 179

Analysis: Make It G.R.E.A.T.! 184

Core Analytics versus Advanced Analytics 186

Listen to Your Analysis 188

Framing the Problem Correctly 189

Statistical Significance versus Business Importance 191

Samples versus Populations 195

Making Inferences versus Computing Statistics 198

Wrap-Up 200

Chapter 8 What Makes a Great Analytic Professional? 201

Who Is the Analytic Professional? 202

The Common Misconceptions about Analytic Professionals 203

Every Great Analytic Professional Is an Exception 204

The Often Underrated Traits of a Great Analytic Professional 208

Is Analytics Certifi cation Needed, or Is It Noise? 222

Wrap-Up 224

Chapter 9 What Makes a Great Analytics Team? 227

All Industries Are Not Created Equal 228

Just Get Started! 230

There’s a Talent Crunch out There 231

Team Structures 232

Keeping a Great Team’s Skills Up 237

Who Should Be Doing Advanced Analytics? 241

Why Can’t IT and Analytic Professionals Get Along? 245

Wrap-Up 247

Notes 248

PART FOUR BRINGING IT TOGETHER: THE ANALYTICS CULTURE 249

Chapter 10 Enabling Analytic Innovation 251

Businesses Need More Innovation 252

Traditional Approaches Hamper Innovation 253

Defining Analytic Innovation 255

Iterative Approaches to Analytic Innovation 256

Consider a Change in Perspective 257

Are You Ready for an Analytic Innovation Center? 259

Wrap-Up 269

Note 270

Chapter 11 Creating a Culture of Innovation and Discovery 271

Setting the Stage 272

Overview of the Key Principles 274

Wrap-Up 290

Notes 291

Conclusion: Think Bigger! 293

About the Author 295

Index 297

Taming The Big Data Tidal Wave

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    A Hardback by Bill Franks, Thomas H. Davenport


      View other formats and editions of Taming The Big Data Tidal Wave by Bill Franks

      Publisher: John Wiley & Sons Inc
      Publication Date: 27/04/2012
      ISBN13: 9781118208786, 978-1118208786
      ISBN10: 1118208781

      Description

      Book Synopsis
      You receive an e-mail. It contains an offer for a complete personal computer system. It seems like the retailer read your mind since you were exploring computers on their web site just a few hours prior .

      Table of Contents

      Foreword xiii

      Preface xvii

      Acknowledgments xxv

      Part One The Rise of Big Data 1

      Chapter 1 What Is Big Data and Why Does It Matter? 3

      What Is Big Data? 4

      Is the “Big” Part or the “Data” Part More Important? 5

      How Is Big Data Different? 7

      How Is Big Data More of the Same? 9

      Risks of Big Data 10

      Why You Need to Tame Big Data 12

      The Structure of Big Data 14

      Exploring Big Data 16

      Most Big Data Doesn’t Matter 17

      Filtering Big Data Effectively 20

      Mixing Big Data with Traditional Data 21

      The Need for Standards 22

      Today’s Big Data Is Not Tomorrow’s Big Data 24

      Wrap-Up 26

      Notes 27

      Chapter 2 Web Data: The Original Big Data 29

      Web Data Overview 30

      What Web Data Reveals 36

      Web Data in Action 42

      Wrap-Up 50

      Note 51

      Chapter 3 A Cross-Section of Big Data Sources and the Value They Hold 53

      Auto Insurance: The Value of Telematics Data 54

      Multiple Industries: The Value of Text Data 57

      Multiple Industries: The Value of Time and Location Data 60

      Retail and Manufacturing: The Value of Radio Frequency Identification Data 64

      Utilities: The Value of Smart-Grid Data 68

      Gaming: The Value of Casino Chip Tracking Data 71

      Industrial Engines and Equipment: The Value of Sensor Data 73

      Video Games: The Value of Telemetry Data 76

      Telecommunications and Other Industries: The Value of Social Network Data 78

      Wrap-Up 82

      Part Two Taming Big Data: The Technologies, Processes, and Methods 85

      Chapter 4 The Evolution of Analytic Scalability 87

      A History of Scalability 88

      The Convergence of the Analytic and Data Environments 90

      Massively Parallel Processing Systems 93

      Cloud Computing 102

      Grid Computing 109

      MapReduce 110

      It Isn’t an Either/Or Choice! 117

      Wrap-Up 118

      Notes 119

      Chapter 5 The Evolution of Analytic Processes 121

      The Analytic Sandbox 122

      What Is an Analytic Data Set? 133

      Enterprise Analytic Data Sets 137

      Embedded Scoring 145

      Wrap-Up 151

      Chapter 6 The Evolution of Analytic Tools and Methods 153

      The Evolution of Analytic Methods 154

      The Evolution of Analytic Tools 163

      Wrap-Up 175

      Notes 176

      Part Three Taming Big Data: The People and Approaches 177

      Chapter 7 What Makes a Great Analysis? 179

      Analysis versus Reporting 179

      Analysis: Make It G.R.E.A.T.! 184

      Core Analytics versus Advanced Analytics 186

      Listen to Your Analysis 188

      Framing the Problem Correctly 189

      Statistical Significance versus Business Importance 191

      Samples versus Populations 195

      Making Inferences versus Computing Statistics 198

      Wrap-Up 200

      Chapter 8 What Makes a Great Analytic Professional? 201

      Who Is the Analytic Professional? 202

      The Common Misconceptions about Analytic Professionals 203

      Every Great Analytic Professional Is an Exception 204

      The Often Underrated Traits of a Great Analytic Professional 208

      Is Analytics Certifi cation Needed, or Is It Noise? 222

      Wrap-Up 224

      Chapter 9 What Makes a Great Analytics Team? 227

      All Industries Are Not Created Equal 228

      Just Get Started! 230

      There’s a Talent Crunch out There 231

      Team Structures 232

      Keeping a Great Team’s Skills Up 237

      Who Should Be Doing Advanced Analytics? 241

      Why Can’t IT and Analytic Professionals Get Along? 245

      Wrap-Up 247

      Notes 248

      PART FOUR BRINGING IT TOGETHER: THE ANALYTICS CULTURE 249

      Chapter 10 Enabling Analytic Innovation 251

      Businesses Need More Innovation 252

      Traditional Approaches Hamper Innovation 253

      Defining Analytic Innovation 255

      Iterative Approaches to Analytic Innovation 256

      Consider a Change in Perspective 257

      Are You Ready for an Analytic Innovation Center? 259

      Wrap-Up 269

      Note 270

      Chapter 11 Creating a Culture of Innovation and Discovery 271

      Setting the Stage 272

      Overview of the Key Principles 274

      Wrap-Up 290

      Notes 291

      Conclusion: Think Bigger! 293

      About the Author 295

      Index 297

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